MACHINELEARNING_PROGRAMMING Telegram 333
πŸ“š Become a professional data scientist with these 17 resources!



1️⃣ Python libraries for machine learning

◀️ Introducing the best Python tools and packages for building ML models.

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2️⃣ Deep Learning Interactive Book

◀️ Learn deep learning concepts by combining text, math, code, and images.

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3️⃣ Anthology of Data Science Learning Resources

◀️ The best courses, books, and tools for learning data science.

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4️⃣ Implementing algorithms from scratch

◀️ Coding popular ML algorithms from scratch

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5️⃣ Machine Learning Interview Guide

◀️ Fully prepared for job interviews

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6️⃣ Real-world machine learning projects

◀️ Learning how to build and deploy models.

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7️⃣ Designing machine learning systems

◀️ How to design a scalable and stable ML system.

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8️⃣ Machine Learning Mathematics

◀️ Basic mathematical concepts necessary to understand machine learning.

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9️⃣ Introduction to Statistical Learning

◀️ Learn algorithms with practical examples.

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1️⃣ Machine learning with a probabilistic approach

◀️ Better understanding modeling and uncertainty with a statistical perspective.

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1️⃣ UBC Machine Learning

◀️ Deep understanding of machine learning concepts with conceptual teaching from one of the leading professors in the field of ML,

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1️⃣ Deep Learning with Andrew Ng

◀️ A strong start in the world of neural networks, CNNs and RNNs.

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1️⃣ Linear Algebra with 3Blue1Brown

◀️ Intuitive and visual teaching of linear algebra concepts.

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πŸ”΄ Machine Learning Course

◀️ A combination of theory and practical training to strengthen ML skills.

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1️⃣ Mathematical Optimization with Python

◀️ You will learn the basic concepts of optimization with Python code.

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1️⃣ Explainable models in machine learning

◀️ Making complex models understandable.

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⚫️ Data Analysis with Python

◀️ Data analysis skills using Pandas and NumPy libraries.


βœ… @MachineLearning_Programming
πŸ‘8❀7πŸ”₯1



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πŸ“š Become a professional data scientist with these 17 resources!



1️⃣ Python libraries for machine learning

◀️ Introducing the best Python tools and packages for building ML models.

βž–βž–βž–

2️⃣ Deep Learning Interactive Book

◀️ Learn deep learning concepts by combining text, math, code, and images.

βž–βž–βž–

3️⃣ Anthology of Data Science Learning Resources

◀️ The best courses, books, and tools for learning data science.

βž–βž–βž–

4️⃣ Implementing algorithms from scratch

◀️ Coding popular ML algorithms from scratch

βž–βž–βž–

5️⃣ Machine Learning Interview Guide

◀️ Fully prepared for job interviews

βž–βž–βž–

6️⃣ Real-world machine learning projects

◀️ Learning how to build and deploy models.

βž–βž–βž–

7️⃣ Designing machine learning systems

◀️ How to design a scalable and stable ML system.

βž–βž–βž–

8️⃣ Machine Learning Mathematics

◀️ Basic mathematical concepts necessary to understand machine learning.

βž–βž–βž–

9️⃣ Introduction to Statistical Learning

◀️ Learn algorithms with practical examples.

βž–βž–βž–

1️⃣ Machine learning with a probabilistic approach

◀️ Better understanding modeling and uncertainty with a statistical perspective.

βž–βž–βž–

1️⃣ UBC Machine Learning

◀️ Deep understanding of machine learning concepts with conceptual teaching from one of the leading professors in the field of ML,

βž–βž–βž–

1️⃣ Deep Learning with Andrew Ng

◀️ A strong start in the world of neural networks, CNNs and RNNs.

βž–βž–βž–

1️⃣ Linear Algebra with 3Blue1Brown

◀️ Intuitive and visual teaching of linear algebra concepts.

βž–βž–βž–

πŸ”΄ Machine Learning Course

◀️ A combination of theory and practical training to strengthen ML skills.

βž–βž–βž–

1️⃣ Mathematical Optimization with Python

◀️ You will learn the basic concepts of optimization with Python code.

βž–βž–βž–

1️⃣ Explainable models in machine learning

◀️ Making complex models understandable.

βž–βž–βž–

⚫️ Data Analysis with Python

◀️ Data analysis skills using Pandas and NumPy libraries.


βœ… @MachineLearning_Programming

BY Computer Science and Programming




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Step-by-step tutorial on desktop: β€œHey degen, are you stressed? Just let it all out,” he wrote, along with a link to join the group. A Hong Kong protester with a petrol bomb. File photo: Dylan Hollingsworth/HKFP. Matt Hussey, editorial director of NEAR Protocol (and former editor-in-chief of Decrypt) responded to the news of the Telegram group with β€œ#meIRL.” Other crimes that the SUCK Channel incited under Ng’s watch included using corrosive chemicals to make explosives and causing grievous bodily harm with intent. The court also found Ng responsible for calling on people to assist protesters who clashed violently with police at several universities in November 2019.
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